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Consequently, the temperature range at which the adhesion switch occurs may be adjusted by choosing a shape-memory alloy with a different transition temperature.
By adopting an advanced material design concept that combines a composite with a shape memory alloy (SMA), a structure was developed that not only has the characteristics of the composite, such as high specific strength and an adjustable design, but also the shape memory effect of the SMA.
To this end, a proof-of-concept passive structure was developed from a Shape Memory Alloy (SMA), and demonstrated at the millimeter scale in previous work.
One-way shape memory effect (SME) is not suitable mechanism for application to the repeated actuation of an shape memory alloy (SMA) wire because the host structure does not return to its initial shape after it cools down.
Stress is built up in a shape memory alloy if the strain recovery due to shape memory effect is blocked.
This result was shown in simulation only, for a shape memory alloy actuator.
The adopted actuator is a shape memory alloy such as nitinol.
A Ginzburg Landau model for the macroscopic behaviour of a shape memory alloy is proposed.
The system uses a shape memory alloy actuator which contracts when heated and then snaps back into its original form.
In our implementation of Move-it, a shape memory alloy is heated to about 70 Celsius degrees at the maximum.
Metals used include steel and nickel titanium, a shape memory alloy.
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